Signal processing method, massager, mobile terminal and display device
By converting the low-frequency electrical pulse signal of the wearable massager into a visual waveform signal, the problem of users being difficult to feel the massage effect and unable to view the operating status is solved, and the user experience is improved.
Patent Information
- Application Number
- CN202110210862.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-02-25
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2041-02-25
AI Technical Summary
The existing wearable low-frequency massagers have low output electrical pulse frequency, resulting in slight vibration stimulation, which makes it difficult for special users to feel the massage effect, and they cannot directly view the operating status of the massager, resulting in a reduced user experience.
The low-frequency electrical pulse signal of the massager is converted into a visual waveform signal and displayed through the display device so that the user can intuitively view the operating status of the massager.
The visualization of low-frequency electrical pulse signals is realized, and users can directly view the operating status of the massager, improving the user experience.
Smart Images

Figure CN112992330B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of massage devices, and in particular, to a signal processing method, a massager, a mobile terminal, and a display device. Background Art
[0002] At present, for a massage device such as a wearable low-frequency massager operating at a low gear, since the output electrical pulse frequency is low, the generated vibration stimulation is relatively mild. For some special users, such as users with a high skin tolerance, this is very unfriendly. They will hardly feel the massage effect, thus mistakenly thinking that the massager is not turned on or malfunctioning. And users cannot directly obtain the operating state of the massager, resulting in users repeatedly adjusting the massager gear and even frequently removing the massager for inspection, which will undoubtedly greatly reduce the user experience. Summary of the Invention
[0003] The present invention aims to solve at least one of the technical problems existing in the prior art.
[0004] For this reason, one object of the present invention is to provide a signal processing method, which can convert the low-frequency electrical pulse signal during the operation of the massager into a corresponding waveform signal and display it, thereby realizing the visualization of the low-frequency electrical pulse signal, facilitating the user to directly view and easily obtaining the current operating state of the massager, and improving the user experience.
[0005] For this reason, the second object of the present invention is to provide a signal processing method.
[0006] For this reason, the third object of the present invention is to provide a wearable massager.
[0007] For this reason, the fourth object of the present invention is to provide a mobile terminal.
[0008] For this reason, the fifth object of the present invention is to provide a massager control system.
[0009] For this reason, the sixth object of the present invention is to provide a wearable massager.
[0010] For this reason, the seventh object of the present invention is to provide a display device.
[0011] For this reason, the eighth object of the present invention is to provide a computer-readable storage medium.
[0012] For this reason, the ninth object of the present invention is to provide a computer-readable storage medium.
[0013] To achieve the above object, an embodiment of the first aspect of the present invention discloses a signal processing method applied to a wearable massager. The massager includes an electrode assembly for outputting an electrical pulse signal. The signal processing method includes: obtaining a first electrical pulse signal output by the massager in the current massage mode; converting the first electrical pulse signal into a first waveform signal; and displaying, by using a display device, a first waveform corresponding to the first waveform signal.
[0014] According to the signal processing method of the embodiment of the present invention, a first electrical pulse signal, that is, a low-frequency electrical pulse signal, output by the massager in the current massage mode is obtained; the first electrical pulse signal is converted into a first waveform signal, and the first waveform corresponding to the first waveform signal is displayed by using a display device for the user to view. Thus, the low-frequency electrical pulse signal during the operation of the massager can be converted into a corresponding waveform signal and displayed, so as to realize the visualization of the low-frequency electrical pulse signal, facilitate the user to directly view, and facilitate the user to know the current operation state of the massager, thereby improving the user experience.
[0015] In addition, the signal processing method of the above embodiment of the present invention may further include the following additional technical features:
[0016] In some examples, the display device is a display device of a mobile terminal, and the massager is communicatively connected to the mobile terminal; the displaying, by using the display device, a first waveform corresponding to the first waveform signal includes: sending the first waveform signal to the mobile terminal to display, by using the display device of the mobile terminal, a first waveform corresponding to the first waveform signal.
[0017] In some examples, after displaying, by using the display device of the mobile terminal, a first waveform corresponding to the first waveform signal, the method further includes: receiving a second waveform signal sent by the mobile terminal, where the second waveform signal is a signal generated by adjusting the first waveform; converting the second waveform signal into a second electrical pulse signal; and outputting the second electrical pulse signal.
[0018] In some examples, the display device is a display screen of the massager.
[0019] In some examples, the method further includes: receiving an adjustment operation of the user on the first waveform to obtain a third waveform; generating a third waveform signal according to the third waveform; converting the third waveform signal into a third electrical pulse signal; and outputting the third electrical pulse signal.
[0020] In some examples, before obtaining the first electrical pulse signal, the method further includes: receiving a start instruction for starting the current massage mode; and executing the start instruction to output the first electrical pulse signal.
[0021] In some examples, the method further includes: receiving a fourth waveform signal sent by a preset terminal; generating a corresponding massage mode according to the fourth waveform signal; and saving the massage mode.
[0022] In some examples, the current massage mode is the massage mode corresponding to the fourth waveform signal.
[0023] In some examples, the method further includes: sending a waveform acquisition request to the preset terminal; and the receiving the fourth waveform signal sent by the preset terminal includes: receiving the fourth waveform signal returned by the preset terminal according to the waveform acquisition request.
[0024] To achieve the above object, an embodiment of the second aspect of the present invention discloses a signal processing method, which is applied to a display device. The signal processing method includes: receiving a first waveform signal sent by a massager, where the first waveform signal is a waveform signal obtained by converting a first electrical pulse signal output by the massager; and displaying a first waveform corresponding to the first waveform signal.
[0025] According to the signal processing method of the embodiment of the present invention, a first waveform signal obtained by converting the first electrical pulse signal output by the massager is received, and a first waveform corresponding to the first waveform signal is displayed for the user to view. Thus, the low-frequency electrical pulse signal during the operation of the massager can be converted into a corresponding waveform signal and displayed, thereby realizing the visualization of the low-frequency electrical pulse signal, facilitating the user to directly view, and facilitating the user to learn about the current operating state of the massager, improving the user experience.
[0026] In addition, the signal processing method of the above embodiment of the present invention may further include the following additional technical features:
[0027] In some examples, the display device is a display device of a mobile terminal, and the massager is communicatively connected to the mobile terminal; the displaying the first waveform corresponding to the first waveform signal includes: using the display device of the mobile terminal to display the first waveform corresponding to the first waveform signal.
[0028] In some examples, after using the display device of the mobile terminal to display the first waveform corresponding to the first waveform signal, it further includes: sending a second waveform signal to the massager, so that the massager converts the second waveform signal into a second electrical pulse signal and then outputs the second electrical pulse signal, where the second waveform signal is a signal generated by adjusting the first waveform.
[0029] In some examples, the display device is a display screen of the massager.
[0030] In some examples, the method further includes: receiving an adjustment operation of the user on the first waveform to obtain a third waveform; generating a third waveform signal according to the third waveform; and sending the third waveform signal to the massager, so that the massager converts the third waveform signal into a third electrical pulse signal and outputs the third electrical pulse signal.
[0031] To achieve the above object, an embodiment of the third aspect of the present invention discloses a wearable massager, which includes: an electrode assembly for outputting an electrical pulse signal; an acquisition module for acquiring a first electrical pulse signal output by the massager in the current massage mode; a conversion module for converting the first electrical pulse signal into a first waveform signal; and a first transmission module for sending the first waveform signal to a display device to display a first waveform corresponding to the first waveform signal by using the display device.
[0032] According to the wearable massager of the embodiment of the present invention, a first electrical pulse signal output by the massager in the current massage mode, that is, a low-frequency electrical pulse signal, is acquired; the first electrical pulse signal is converted into a first waveform signal, and the first waveform corresponding to the first waveform signal is displayed by using the display device for the user to view. Thus, the low-frequency electrical pulse signal during the operation of the massager can be converted into a corresponding waveform signal and displayed, so as to realize the visualization of the low-frequency electrical pulse signal, which is convenient for the user to directly view, facilitates learning about the current operation state of the massager, and improves the user experience.
[0033] To achieve the above object, an embodiment of the fourth aspect of the present invention discloses a mobile terminal, which includes: a second transmission module for receiving a first waveform signal sent by a massager, where the first waveform signal is a waveform signal obtained by converting a first electrical pulse signal output by the massager; and a display module for displaying a first waveform corresponding to the first waveform signal.
[0034] According to the mobile terminal of the embodiment of the present invention, a first waveform signal obtained by the massager converting its output first electrical pulse signal is received, and the first waveform corresponding to the first waveform signal is displayed for the user to view. Thus, the low-frequency electrical pulse signal during the operation of the massager can be converted into a corresponding waveform signal and displayed, so as to realize the visualization of the low-frequency electrical pulse signal, which is convenient for the user to directly view, facilitates learning about the current operation state of the massager, and improves the user experience.
[0035] To achieve the above object, an embodiment of the fifth aspect of the present invention discloses a massager control system, which includes: the wearable massager described in the third aspect embodiment of the present invention; and the mobile terminal described in the fourth aspect embodiment of the present invention.
[0036] According to the control system of the massager in the embodiments of the present invention, the massager acquires the first electrical pulse signal, i.e., the low-frequency electrical pulse signal, output in its current massage mode; converts the first electrical pulse signal into a first waveform signal, and sends the first waveform signal to the mobile terminal; the mobile terminal uses its display device to display the first waveform corresponding to the first waveform signal for the user to view. Thus, the low-frequency electrical pulse signal during the operation of the massager can be converted into a corresponding waveform signal and displayed, thereby realizing the visualization of the low-frequency electrical pulse signal, facilitating the user to directly view, and being convenient for learning about the current operating state of the massager, improving the user experience.
[0037] To achieve the above object, an embodiment of the sixth aspect of the present invention discloses a wearable massager, which includes a processor, a memory, and a signal processing program stored on the memory and operable on the processor. When the signal processing program is executed by the processor, it implements the signal processing method as described in the first aspect embodiment of the present invention above.
[0038] According to the massager in the embodiments of the present invention, the massager acquires the first electrical pulse signal, i.e., the low-frequency electrical pulse signal, output in the current massage mode; converts the first electrical pulse signal into a first waveform signal, and uses the display device to display the first waveform corresponding to the first waveform signal for the user to view. Thus, the low-frequency electrical pulse signal during the operation of the massager can be converted into a corresponding waveform signal and displayed, thereby realizing the visualization of the low-frequency electrical pulse signal, facilitating the user to directly view, and being convenient for learning about the current operating state of the massager, improving the user experience.
[0039] To achieve the above object, an embodiment of the seventh aspect of the present invention discloses a display device, which includes a processor, a memory, and a signal processing program stored on the memory and operable on the processor. When the signal processing program is executed by the processor, it implements the signal processing method as described in the second aspect embodiment of the present invention above.
[0040] According to the display device in the embodiments of the present invention, it receives the first waveform signal obtained by the massager converting its output first electrical pulse signal, and displays the first waveform corresponding to the first waveform signal for the user to view. Thus, the low-frequency electrical pulse signal during the operation of the massager can be converted into a corresponding waveform signal and displayed, thereby realizing the visualization of the low-frequency electrical pulse signal, facilitating the user to directly view, and being convenient for learning about the current operating state of the massager, improving the user experience.
[0041] To achieve the above object, an embodiment of the eighth aspect of the present invention discloses a computer-readable storage medium, on which a signal processing program is stored. When the signal processing program is executed by a processor, it implements the signal processing method as described in the first aspect embodiment of the present invention above.
[0042] According to an embodiment of the present invention, a computer-readable storage medium stores a program which, when executed, acquires a first electrical pulse signal output by a massager in a current massage mode, i.e., a low-frequency electrical pulse signal; converts the first electrical pulse signal into a first waveform signal, and uses a display device to display a first waveform corresponding to the first waveform signal for a user to view. Thus, the low-frequency electrical pulse signal during the operation of the massager can be converted into a corresponding waveform signal and displayed, thereby realizing the visualization of the low-frequency electrical pulse signal, facilitating the user to directly view, facilitating the user to learn about the current operating state of the massager, and improving the user experience.
[0043] To achieve the above object, an embodiment of the ninth aspect of the present invention discloses a computer-readable storage medium, on which a signal processing program is stored. When the signal processing program is executed by a processor, it implements the signal processing method as described in the second aspect embodiment of the present invention above.
[0044] According to an embodiment of the present invention, a computer-readable storage medium stores a program which, when executed, receives a first waveform signal obtained by the massager converting its output first electrical pulse signal, and displays a first waveform corresponding to the first waveform signal for a user to view. Thus, the low-frequency electrical pulse signal during the operation of the massager can be converted into a corresponding waveform signal and displayed, thereby realizing the visualization of the low-frequency electrical pulse signal, facilitating the user to directly view, facilitating the user to learn about the current operating state of the massager, and improving the user experience.
[0045] Additional aspects and advantages of the present invention will be given in part in the following description, become apparent in part from the following description, or be learned through the practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS
[0046] The above and / or additional aspects and advantages of the present invention will become apparent and be readily understood from the description of the embodiments in conjunction with the following drawings, where:
[0047] Figure 1 is a flowchart of a signal processing method according to an embodiment of the present invention;
[0048] Figure 2 is a flowchart of a signal processing method according to another embodiment of the present invention;
[0049] Figure 3 is a structural block diagram of a wearable massager according to an embodiment of the present invention;
[0050] Figure 4 is a structural block diagram of a mobile terminal according to another embodiment of the present invention;
[0051] Figure 5It is a block diagram of a control system of a massager according to an embodiment of the present invention. Detailed implementation manners
[0052] The embodiments of the present invention will be described in detail below. The embodiments described with reference to the accompanying drawings are exemplary. The embodiments of the present invention will be described in detail below.
[0053] Reference will be made below Figures 1 - 5 to describe a signal processing method, a massager, a mobile terminal, and a display device according to an embodiment of the present invention.
[0054] Figure 1 It is a flowchart of a signal processing method according to an embodiment of the present invention. The signal processing method can be applied to a massager. The massager is, for example, a wearable massager, such as a neck massager, etc. The wearable massager includes an electrode assembly for outputting an electrical pulse signal. The electrode assembly includes, for example, electrode pads. The electrode pads output an electrical pulse signal and act on a human body massage part to achieve massage.
[0055] As Figure 1 shown, the signal processing method includes the following steps:
[0056] Step S1: Obtain a first electrical pulse signal output by the massager in the current massage mode. Among them, the first electrical pulse signal is, for example, a low-frequency electrical pulse signal. When the massager works in the current massage mode, it outputs a first electrical pulse signal, and the electrode assembly performs corresponding massage actions according to the first electrical pulse signal.
[0057] Step S2: Convert the first electrical pulse signal into a first waveform signal.
[0058] Step S3: Use the display device to display the first waveform corresponding to the first waveform signal. Specifically, for example, send the first waveform signal to the display device so that the display device can display the first waveform corresponding to the first waveform signal.
[0059] Specifically, after the massager is started, it works in the current massage mode and outputs a first electrical pulse signal, that is, a low-frequency electrical pulse signal. Obtain the first electrical pulse signal and convert it into a corresponding first waveform signal. Send the first waveform signal to the display device so that the display device can display the first waveform corresponding to the first waveform signal, so that the low-frequency electrical pulse signal output when the massager works can be converted into a visible first waveform, realizing the visualization of the low-frequency electrical pulse signal, facilitating the user to intuitively understand the operating state of the massager, such as whether the massager is running or shut down, etc., avoiding the complex operation of the user removing the massager to check its operating state and the resulting bad feelings, thereby improving the user experience.
[0060] Thus, for the signal processing method, a first electrical pulse signal output by the massager in the current massage mode, i.e., a low-frequency electrical pulse signal, is obtained; the first electrical pulse signal is converted into a first waveform signal, and the display device is used to display the first waveform corresponding to the first waveform signal for the user to view. Thus, the low-frequency electrical pulse signal during the operation of the massager can be converted into a corresponding waveform signal and displayed, thereby realizing the visualization of the low-frequency electrical pulse signal, facilitating the user to directly view it, and making it easy to learn about the current operating state of the massager, improving the user experience.
[0061] In an embodiment of the present invention, the display device can be the display device of a mobile terminal, such as a display screen. Thus, it is convenient for the user to intuitively and conveniently view the displayed waveform, and at the same time, it is convenient for the user to perform custom adjustment operations on the waveform.
[0062] The mobile terminal is, for example, a smart mobile terminal such as a mobile phone or a tablet computer. The massager is communicatively connected to the mobile terminal, such as by a wired communication connection or a wireless communication connection.
[0063] In a specific embodiment, in step S3, the process of using the display device to display the first waveform corresponding to the first waveform signal includes: sending the first waveform signal to the mobile terminal to use the display device of the mobile terminal to display the first waveform corresponding to the first waveform signal. Taking the mobile terminal as a mobile phone as an example, that is, sending the first waveform signal to the mobile phone to use the display device of the mobile phone, such as the mobile phone display screen, to display the first waveform corresponding to the first waveform signal, thereby facilitating the user to directly view it, making it easy to learn about the current operating state of the massager, and improving the user experience.
[0064] In an embodiment of the present invention, after using the display device of the mobile terminal to display the first waveform corresponding to the first waveform signal, the signal processing method further includes: receiving a second waveform signal sent by the mobile terminal, where the second waveform signal is a signal generated by the adjusted waveform of the first waveform; converting the second waveform signal into a second electrical pulse signal; and outputting the second electrical pulse signal.
[0065] In a specific embodiment, after displaying the first waveform through the display device of the mobile terminal, the user can adjust the displayed first waveform through the display device of the mobile terminal, such as adjusting the peaks and valleys of the first waveform, etc., to obtain a second waveform. The mobile terminal sends the second waveform signal corresponding to the second waveform to the massager. After receiving the second waveform signal, the massager converts the second waveform signal into a second electrical pulse signal and outputs the second electrical pulse signal through the electrode assembly, that is, massages with the second electrical pulse. Thus, the user can adjust the first waveform through the mobile terminal, send the waveform signal (i.e., the second waveform signal) required by the user to the massager, so that the massager massages according to the second electrical pulse signal corresponding to the second waveform signal, thereby meeting the user's massage needs and improving the user experience.
[0066] In a specific embodiment, the display device of the mobile terminal has, for example, an operable display screen, such as a touch display screen. The touch display screen can display a first waveform. The user can perform touch operations through the touch display screen to perform custom adjustment operations on the displayed first waveform, such as stretching the first waveform, shrinking the first waveform, changing the peaks and troughs of the first waveform, and finally obtain the second waveform that the user wants to obtain, and generate a second waveform signal corresponding to the second waveform. The second waveform signal is sent to the massager, and the massager converts the second waveform signal into a second electric pulse signal, and outputs different electric pulse signals to achieve different massage techniques. Thereby, the user can realize the independent creation of the visualized waveform and generate a user-defined massage method to meet the user's own massage needs, while improving the fun of human-computer interaction and the user experience.
[0067] In another embodiment of the present invention, the display device may be a display screen of the massager, that is, the display device is a display screen of the massager, that is, the first waveform corresponding to the first waveform signal is displayed through the display screen of the massager. Thus, it is convenient for the user to intuitively and conveniently view the displayed waveform, and at the same time, it is convenient for the user to perform customized adjustment operations on the waveform.
[0068] In a specific implementation, the signal processing method also includes: receiving a user's adjustment operation on the first waveform to obtain a third waveform; generating a third waveform signal based on the third waveform; converting the third waveform signal into a third electrical pulse signal; and outputting the third electrical pulse signal.
[0069] Specifically, the user can adjust the first waveform displayed on the display screen of the massager, such as adjusting the peaks and troughs of the first waveform, to obtain a third waveform, and generate a third waveform signal according to the third waveform. The massager converts the third waveform signal into a third electric pulse signal, and then the massager outputs the third electric pulse signal. Different massage techniques are achieved by outputting different electric pulse signals. The user's independent creation of the visualized waveform is adopted, and a user-defined massage method is generated to meet the user's own massage needs, while improving the fun of human-computer interaction and the user experience.
[0070] In a specific embodiment, the display screen of the massager is, for example, a touch display screen. The touch display screen can display a first waveform. The user can perform touch operations through the touch display screen to perform custom adjustment operations on the displayed first waveform, such as stretching the first waveform, shrinking the first waveform, changing the peaks and valleys of the first waveform, etc. operations, and finally obtain a third waveform desired by the user, and generate a third waveform signal corresponding to the third waveform. The massager converts the third waveform signal into a third electrical pulse signal, and realizes different massage techniques by outputting different electrical pulse signals. Thus, the user can realize the independent creation of the visual waveform, generate a user-defined massage method, meet the user's own massage needs, and at the same time improve the human-computer interaction fun and usage experience.
[0071] In an embodiment of the present invention, in step S1, before obtaining the first electrical pulse signal, the signal processing method further includes: receiving a start instruction for starting the current massage mode; executing the start instruction and outputting the first electrical pulse signal.
[0072] Specifically, for example, when the user triggers the start switch of the massager, such as pressing the start button, at this time, a start instruction is generated. After the massager receives the start instruction, the massager is started and operates in the current massage mode. In the current massage mode, the first electrical pulse signal is output, that is, the electrode assembly performs corresponding massage actions according to the first electrical pulse signal.
[0073] In a specific embodiment, the current massage mode can be a preset massage mode, that is, the massage mode that the massager defaults to enter each time it is started; it can also be the massage mode memorized when the massager was shut down last time.
[0074] In an embodiment of the present invention, the signal processing method further includes: receiving a fourth waveform signal sent by a preset terminal; generating a corresponding massage mode according to the fourth waveform signal; saving the massage mode.
[0075] In an embodiment of the present invention, the signal processing method further includes: sending a waveform acquisition request to a preset terminal; the above-mentioned receiving the fourth waveform signal sent by the preset terminal includes: receiving the fourth waveform signal returned by the preset terminal according to the waveform acquisition request.
[0076] In a specific embodiment, the preset terminal refers to a terminal that can communicate with the massager. The preset terminal includes but is not limited to a mobile terminal and a desktop terminal. The mobile terminal includes a tablet computer, a mobile phone, a wearable intelligent device with a display interface, such as a smart watch, a smart bracelet, etc., which is convenient to use and carry. The mobile terminal can be the mobile terminal described above or other mobile terminals. The preset terminal is communicatively connected to the massager. The fourth waveform signal is, for example, an audio signal, such as a waveform signal corresponding to music, songs, sound effects, voices, etc.
[0077] Specifically, the fourth waveform signal can be a waveform signal customized by the user of the massager. After the user defines the waveform signal, it can be shared with other users. For example, the defined waveform signal can be sent to a sharing platform for other users to download, or directly shared with the corresponding user. The fourth waveform signal can also be a waveform signal shared by other users to the user of the massager. When sharing, it can be directly shared with the user of the massager, that is, directly send the fourth waveform signal to the massager of this user, or shared to the corresponding sharing platform, and the user can download the fourth waveform signal from the sharing platform. For example, if there is an audio signal stored in the preset terminal, such as a song, a corresponding waveform signal, that is, the fourth waveform signal, is generated according to the song, and the fourth waveform signal is sent to the massager through the preset terminal. The massager receives the fourth waveform signal, converts the fourth waveform signal into a corresponding fourth electrical pulse signal, and takes the massage mode corresponding to the output of the fourth electrical pulse signal as the massage mode corresponding to the fourth waveform signal, and saves this massage mode. Or, the preset terminal receives the waveform signal of the massager. Thus, when performing massage, the corresponding massage mode can be selected from the user-defined massage mode and the factory preset massage mode. When the massage mode selected by the user to run is the massage mode defined according to music, etc., the linkage between music, sound effects, etc. and the massager can be realized to meet the massage needs of the user. It can be understood that some music or sound effects are slow-paced and elegant in rhythm, which are very suitable for the body to relax. Therefore, converting these music or sound effects into corresponding waveform signals and transmitting them to the massager to achieve linkage, so that the massager performs massage actions according to the rhythm or pattern corresponding to the music and sound effects, is more easily accepted by the human body, thus can quickly and effectively relieve human fatigue, etc., and thus can improve the massage effect.
[0078] In an embodiment of the present invention, the above current massage mode is, for example, the massage mode corresponding to the fourth waveform signal.
[0079] In an embodiment of the present invention, the saved massage mode generated according to the fourth wave signal can be used as the default massage mode, that is, after starting the massager, the massager runs with the massage mode generated according to the fourth wave signal as the current massage mode.
[0080] In a specific embodiment, for example, the user can generate a corresponding massage mode according to their favorite music, songs, etc., and use this massage mode as the current massage mode of the massager. Thus, after the massager is powered on and started, it runs in this massage mode, thereby realizing the linkage between music, songs, etc. and the massager, so that the massager performs massage actions according to the rhythm or pattern corresponding to the music and sound effects, is more easily accepted by the human body, thus can quickly and effectively relieve human fatigue, etc., and thus can improve the massage effect; at the same time, it meets the massage needs of the user and improves the use experience.
[0081] In an embodiment of the present invention, after saving the massage mode, the signal processing method further includes: pushing the massage mode to a preset user terminal or a preset massager. Specifically, the massage mode generated according to the fourth waveform signal (the massage mode corresponding to an audio signal, such as music, song, etc.) is pushed to the preset user terminal or the preset massager, that is, the user-specified user terminal or the preset massager, such as the user terminals or massagers held by the user's friends, family members, etc., so as to realize the sharing function. That is, the user can share their favorite massage mode with family members and friends, thereby improving the interaction experience and enhancing the fun.
[0082] In a specific embodiment, when the massager performs a massage action, it is used to convert the received low-frequency electrical pulse signal through its electrical stimulation device and output the corresponding low-frequency electrical pulse. The low-frequency electrical pulse acts on the human body through the massage head with an electrode assembly to realize the massage action.
[0083] As a specific embodiment, taking the display device as the display screen of the massager and the preset terminal as the mobile phone as an example, an exemplary description of the signal processing method is given.
[0084] In this embodiment, after the massager is started, it operates according to the current massage mode. The massager generates a first electrical pulse signal, converts the first electrical pulse signal into a first waveform signal that can be displayed, and then displays the first waveform corresponding to the first waveform signal through the display screen of the massager.
[0085] The user can perform adjustment operations on the first waveform by touching the display screen on the display screen of the massager to achieve independent creation, obtain a third waveform, convert the third waveform signal corresponding to the third waveform into a third low-frequency electrical pulse signal, and transmit the third low-frequency electrical pulse signal to the electrode assembly of the massager, so that the electrode assembly performs a massage action according to the third low-frequency electrical pulse signal.
[0086] The massager receives a fourth waveform signal generated from an audio signal, such as music, song, etc., sent by the mobile phone, converts the fourth waveform signal into a corresponding fourth low-frequency electrical pulse signal, and then generates a corresponding massage mode and saves the massage mode. Further, the user can also push the massage mode to other users to achieve sharing.
[0087] Thus, in this embodiment, the low-frequency electrical pulse signal and the waveform signal can be converted into each other. The low-frequency electrical pulse signal can be displayed on the display device to visualize the low-frequency electrical pulse signal. The user can intuitively and conveniently view the operating state of the massager, such as whether the massager is working. In addition, after the low-frequency electrical pulse signal is visualized, the user can also independently create the visualized waveform, that is, the user can define the waveform independently, output the corresponding low-frequency electrical pulse signal to the massager, and customize the unique massage mode of the user, thereby enhancing the operability, interactivity, and interest. Further, the waveform signal corresponding to the audio signal such as music, songs, and sound effects during games can also be converted into the corresponding low-frequency electrical pulse signal, output to the massager for massage, generate the massage mode liked by the user, and save the massage mode for direct retrieval and use when needed, so that the linkage between music and the massager can be realized, and the massager and music reach the same frequency. The user can enjoy the feast of touch and hearing and improve the massage effect. Further, the user can also share the liked massage mode with other users, such as family members and friends, etc., to improve the interactivity and user experience.
[0088] According to the signal processing method of the embodiment of the present invention, obtain the first electrical pulse signal output by the massager in the current massage mode, that is, the low-frequency electrical pulse signal; convert the first electrical pulse signal into the first waveform signal, and use the display device to display the first waveform corresponding to the first waveform signal for the user to view. Thus, the low-frequency electrical pulse signal during the operation of the massager can be converted into the corresponding waveform signal and displayed, so as to realize the visualization of the low-frequency electrical pulse signal, facilitate the user to directly view, and facilitate learning about the current operating state of the massager, improving the user experience.
[0089] A further embodiment of the present invention also proposes a signal processing method.
[0090] Figure 2 It is a flowchart of the signal processing method according to another embodiment of the present invention. This signal processing method can be applied to a display device.
[0091] As Figure 2 shown, this signal processing method includes the following steps:
[0092] Step S10: Receive the first waveform signal sent by the massager, where the first waveform signal is the waveform signal converted from the first electrical pulse signal output by the massager. The first electrical pulse signal is, for example, a low-frequency electrical pulse signal.
[0093] Step S20: Display the first waveform corresponding to the first waveform signal. That is, after the display device receives the first waveform signal sent by the massager, it displays the first waveform corresponding to the first waveform signal.
[0094] Specifically, after the massager is started, it works in the current massage mode and outputs a first electrical pulse signal, namely a low-frequency electrical pulse signal. The massager can perform corresponding massage actions according to the first electrical pulse signal. The massager obtains the first electrical pulse signal, converts the first electrical pulse signal, and obtains a corresponding first waveform signal, and sends the first waveform signal to the display device. After receiving the first waveform signal, the display device displays the first waveform corresponding to the first waveform signal, so that the low-frequency electrical pulse signal output when the massager works can be converted into a visible first waveform, realizing the visualization of the low-frequency electrical pulse signal, facilitating the user to intuitively understand the operating state of the massager, such as whether the massager is running or shut down, etc., avoiding the complex operation of the user to check the operating state by removing the massager and the resulting bad feelings, thereby improving the user experience.
[0095] Thus, this signal processing method receives the first waveform signal obtained by the massager converting its output first electrical pulse signal, and displays the first waveform corresponding to the first waveform signal for the user to view. Thus, the low-frequency electrical pulse signal during the operation of the massager can be converted into a corresponding waveform signal and displayed, thereby realizing the visualization of the low-frequency electrical pulse signal, facilitating the user to directly view, and facilitating the user to learn about the current operating state of the massager, improving the user experience.
[0096] In an embodiment of the present invention, the display device can be the display device of a mobile terminal, such as a display screen. Thus, it is convenient for the user to intuitively and conveniently view the displayed waveform, and at the same time, it is convenient for the user to perform custom adjustment operations on the waveform.
[0097] The mobile terminal is, for example, an intelligent mobile terminal such as a mobile phone or a tablet computer. The massager is communicatively connected to the mobile terminal, such as a wired communication connection or a wireless communication connection.
[0098] In a specific embodiment, in step S20, the process of displaying the first waveform corresponding to the first waveform signal includes: using the display device of the mobile terminal to display the first waveform corresponding to the first waveform signal. Taking the mobile terminal as a mobile phone as an example, that is, sending the first waveform signal to the mobile phone to use the display device of the mobile phone, such as the mobile phone display screen, to display the first waveform corresponding to the first waveform signal, so as to facilitate the user to directly view and facilitate the user to learn about the current operating state of the massager, improving the user experience.
[0099] In an embodiment of the present invention, after using the display device of the mobile terminal to display the first waveform corresponding to the first waveform signal, this signal processing method further includes: sending a second waveform signal to the massager so that the massager converts the second waveform signal into a second electrical pulse signal and then outputs the second electrical pulse signal, where the second waveform signal is a signal generated by adjusting the first waveform.
[0100] In a specific embodiment, after the first waveform is displayed through the display device of the mobile terminal, the user can adjust the displayed first waveform through the display device of the mobile terminal, such as adjusting the peaks and troughs of the first waveform, to obtain a second waveform, and the mobile terminal sends a second waveform signal corresponding to the second waveform to the massager, and after the massager receives the second waveform signal, it converts the second waveform signal into a second electric pulse signal, and outputs the second electric pulse signal through the electrode assembly, that is, massage with the second electric pulse. Thus, the user can adjust the first waveform through the mobile terminal, and send the waveform signal (i.e., the second waveform signal) required by the user to the massager, so that the massager performs massage according to the second electric pulse signal corresponding to the second waveform signal, thereby satisfying the massage needs of the user and improving the user experience.
[0101] In a specific embodiment, the display device of the mobile terminal has, for example, an operable display screen, such as a touch display screen. The touch display screen can display a first waveform. The user can perform touch operations through the touch display screen to perform custom adjustment operations on the displayed first waveform, such as stretching the first waveform, shrinking the first waveform, changing the peaks and troughs of the first waveform, and finally obtain the second waveform that the user wants to obtain, and generate a second waveform signal corresponding to the second waveform. The second waveform signal is sent to the massager, and the massager converts the second waveform signal into a second electric pulse signal, and outputs different electric pulse signals to achieve different massage techniques. Thereby, the user can realize the independent creation of the visualized waveform and generate a user-defined massage method to meet the user's own massage needs, while improving the fun of human-computer interaction and the user experience.
[0102] In another embodiment of the present invention, the display device may be a display screen of the massager, that is, the display device is a display screen of the massager, that is, the first waveform corresponding to the first waveform signal is displayed through the display screen of the massager. Thus, it is convenient for the user to intuitively and conveniently view the displayed waveform, and at the same time, it is convenient for the user to perform customized adjustment operations on the waveform.
[0103] In one embodiment of the present invention, the signal processing method also includes: receiving a user's adjustment operation on the first waveform to obtain a third waveform; generating a third waveform signal based on the second waveform; and sending the third waveform signal to the massager so that the massager converts the third waveform signal into a third electrical pulse signal and then outputs the third electrical pulse signal.
[0104] Specifically, the user can perform adjustment operations on the first waveform displayed on the display screen of the massager, such as adjusting the peaks, valleys, etc. of the first waveform, to obtain a third waveform, generate a third waveform signal according to the third waveform, and send the third waveform signal to the massager. After receiving the third waveform signal, the massager converts the third waveform signal into a third electrical pulse signal. Furthermore, the massager outputs the third electrical pulse signal to achieve different massage techniques by outputting different electrical pulse signals. By adopting the user's independent creation of the visual waveform and generating a user-defined massage method, it meets the user's own massage needs, and at the same time improves the human-computer interaction fun and usage experience.
[0105] In a specific embodiment, the display screen of the massager is, for example, a touch display screen. The touch display screen can display the first waveform. The user can perform touch operations through the touch display screen to perform custom adjustment operations on the displayed first waveform, such as stretching the first waveform, contracting the first waveform, changing the peaks and valleys of the first waveform, etc. operations, and finally obtain the third waveform that the user hopes to obtain, and generate a third waveform signal corresponding to the third waveform. Send the third waveform signal to the massager, and the massager converts the third waveform signal into a third electrical pulse signal, and realizes different massage techniques by outputting different electrical pulse signals. Thus, the user's independent creation of the visual waveform can be realized, and a user-defined massage method can be generated, which meets the user's own massage needs, and at the same time improves the human-computer interaction fun and usage experience.
[0106] For a detailed description of this display device, reference can be made to the description part of the display device involved in the signal processing method for the wearable massager in any of the above embodiments. To reduce redundancy, it will not be elaborated here.
[0107] According to the signal processing method of the embodiment of the present invention, a first waveform signal obtained by the massager converting its output first electrical pulse signal is received, and the first waveform corresponding to the first waveform signal is displayed for the user to view. Thus, the low-frequency electrical pulse signal during the operation of the massager can be converted into a corresponding waveform signal and displayed, thereby realizing the visualization of the low-frequency electrical pulse signal, facilitating the user to directly view, and facilitating the user to learn about the current operating state of the massager, improving the user's usage experience.
[0108] A further embodiment of the present invention proposes a wearable massager, such as a neck massager, etc.
[0109] Figure 3 It is a structural block diagram of a wearable massager according to an embodiment of the present invention.
[0110] As Figure 3 shown, the wearable massager 100 includes: an electrode assembly 110, an acquisition module 120, a conversion module 130, and a first transmission module 140.
[0111] Specifically, the electrode assembly 110 is used to output an electrical pulse signal. For example, the electrode assembly 110 includes electrode sheets, and the electrode sheets output electrical pulse signals and act on the human body massage part to achieve massage.
[0112] The acquisition module 120 is used to acquire the first electrical pulse signal output by the massager in the current massage mode. Among them, the first electrical pulse signal is, for example, a low-frequency electrical pulse signal. When the massager works in the current massage mode, it outputs the first electrical pulse signal, and the electrode assembly 110 performs corresponding massage actions according to the first electrical pulse signal.
[0113] The conversion module 130 is used to convert the first electrical pulse signal into a first waveform signal;
[0114] The first transmission module 140 is used to send the first waveform signal to the display device to use the display device to display the first waveform corresponding to the first waveform signal.
[0115] Specifically, that is, after the massager is started, it works in the current massage mode and outputs the first electrical pulse signal, that is, the low-frequency electrical pulse signal. The acquisition module 120 acquires the first electrical pulse signal, and the conversion module 130 converts it into the corresponding first waveform signal. The first transmission module 140 sends the first waveform signal to the display device, so that the display device displays the first waveform corresponding to the first waveform signal, so that the low-frequency electrical pulse signal output when the massager works can be converted into a visible first waveform, realizing the visualization of the low-frequency electrical pulse signal, facilitating the user to intuitively understand the operation state of the massager, such as whether the massager is running or shut down, etc., avoiding the complex operation of the user to view its operation state by removing the massager and the resulting bad feelings, thereby improving the user experience.
[0116] Therefore, the wearable massager 100 acquires the first electrical pulse signal, that is, the low-frequency electrical pulse signal, output by the massager in the current massage mode; converts the first electrical pulse signal into a first waveform signal, and uses the display device to display the first waveform corresponding to the first waveform signal for the user to view. Therefore, the low-frequency electrical pulse signal during the operation of the massager can be converted into a corresponding waveform signal and displayed, thereby realizing the visualization of the low-frequency electrical pulse signal, facilitating the user to directly view, facilitating the user to learn about the current operation state of the massager, and improving the user experience.
[0117] In an embodiment of the present invention, the display device may be the display device of a mobile terminal, such as a display screen. Thus, it is convenient for the user to intuitively and conveniently view the displayed waveform, and at the same time, it is convenient for the user to perform custom adjustment operations on the waveform.
[0118] The mobile terminal is, for example, a smart mobile terminal such as a mobile phone or a tablet computer. The massager is communicatively connected to the mobile terminal, such as a wired communication connection or a wireless communication connection.
[0119] In a specific embodiment, the process of the first transmission module 140 using the display device to display the first waveform corresponding to the first waveform signal includes: sending the first waveform signal to the mobile terminal so as to use the display device of the mobile terminal to display the first waveform corresponding to the first waveform signal. Taking the mobile terminal as a mobile phone as an example, that is, sending the first waveform signal to the mobile phone so as to use the display device of the mobile phone, such as the mobile phone display screen, to display the first waveform corresponding to the first waveform signal, thereby facilitating the user to directly view and facilitating the user to learn about the current operating state of the massager, improving the user experience.
[0120] In an embodiment of the present invention, after using the display device of the mobile terminal to display the first waveform corresponding to the first waveform signal, the first transmission module 140 is further configured to: receive the second waveform signal sent by the mobile terminal, where the second waveform signal is a signal generated by adjusting the first waveform. The conversion module 130 is further configured to: convert the second waveform signal into a second electrical pulse signal so that the electrode assembly 110 outputs the second electrical pulse signal.
[0121] In a specific embodiment, after the first waveform is displayed through the display device of the mobile terminal, the user can adjust the displayed first waveform through the display device of the mobile terminal, for example, adjusting the peaks and valleys of the first waveform, etc., to obtain a second waveform. The mobile terminal sends the second waveform signal corresponding to the second waveform to the massager. After receiving the second waveform signal, the massager converts the second waveform signal into a second electrical pulse signal and outputs the second electrical pulse signal through the electrode assembly, that is, performs massage with the second electrical pulse. Thus, the user can adjust the first waveform through the mobile terminal, send the waveform signal (i.e., the second waveform signal) required by the user to the massager, so that the massager performs massage according to the second electrical pulse signal corresponding to the second waveform signal, thereby meeting the massage needs of the user and improving the user experience.
[0122] In a specific embodiment, the display device of the mobile terminal, for example, has an operable display screen, such as a touch display screen. The touch display screen can display the first waveform. The user can perform touch operations through the touch display screen to perform custom adjustment operations on the displayed first waveform, such as stretching the first waveform, shrinking the first waveform, changing the peaks and valleys of the first waveform, etc. Finally, the second waveform desired by the user is obtained, and the second waveform signal corresponding to the second waveform is generated. The second waveform signal is sent to the massager, and the massager converts the second waveform signal into a second electrical pulse signal and outputs different electrical pulse signals to achieve different massage techniques. Thus, the user can independently create a visual waveform and generate a user-defined massage method, meeting the user's own massage needs, while improving the fun of human-computer interaction and the user experience.
[0123] In another embodiment of the present invention, the display device may be the display screen of a massager, that is, the display device is the built-in display screen of the massager, and the first waveform corresponding to the first waveform signal is displayed through the display screen of the massager. Thus, it is convenient for the user to intuitively and conveniently view the displayed waveform, and at the same time, it is convenient for the user to perform custom adjustment operations on the waveform.
[0124] In a specific implementation, the first transmission module 140 is further configured to receive, through the display device, the adjustment operation of the user on the first waveform to obtain a third waveform. The conversion module 130 is further configured to generate a second waveform signal according to the second waveform; convert the third waveform signal into a third electrical pulse signal so that the electrode assembly 110 outputs the third electrical pulse signal.
[0125] Specifically, that is, the user can perform an adjustment operation on the first waveform displayed on the display screen of the massager, such as adjusting the peak and valley of the first waveform, etc., to obtain a third waveform, generate a third waveform signal according to the third waveform, and the massager converts the third waveform signal into a third electrical pulse signal. Furthermore, the massager outputs the third electrical pulse signal, and different massage techniques are realized by outputting different electrical pulse signals. By adopting the user's independent creation of the visual waveform and generating a user-defined massage method, it meets the user's own massage needs, and at the same time improves the human-computer interaction fun and usage experience.
[0126] In a specific embodiment, the display screen of the massager is, for example, a touch display screen. The touch display screen can display the first waveform. The user can perform a touch operation through the touch display screen to perform a custom adjustment operation on the displayed first waveform, such as stretching the first waveform, shrinking the first waveform, changing the peak and valley of the first waveform, etc. operations, and finally obtain the third waveform desired by the user, and generate a third waveform signal corresponding to the third waveform. The massager converts the third waveform signal into a third electrical pulse signal, and different massage techniques are realized by outputting different electrical pulse signals. Thus, the user can independently create the visual waveform and generate a user-defined massage method, which meets the user's own massage needs, and at the same time improves the human-computer interaction fun and usage experience.
[0127] In an embodiment of the present invention, the first transmission module 140 is further configured to receive a start instruction for starting the current massage mode. The electrode assembly 110 outputs a first electrical pulse signal according to the start instruction.
[0128] Specifically, for example, the user triggers the start switch of the massager, such as pressing the start button. At this time, a start instruction is generated. After the massager receives the start instruction, the massager is started and runs in the current massage mode. In the current massage mode, a first electrical pulse signal is output, that is, the electrode assembly 110 performs corresponding massage actions according to the first electrical pulse signal.
[0129] In a specific embodiment, the current massage mode may be a pre-set massage mode, that is, the massage mode that the massager defaults to enter each time it is started; or it may be the massage mode memorized when the massager was shut down last time.
[0130] In an embodiment of the present invention, the first transmission module 140 is further configured to receive a fourth waveform signal sent by a preset terminal. The wearable massager 100 further includes a mode generation module ( Figure 3 not shown in the figure) and a storage module ( Figure 3 not shown in the figure). The mode generation module is configured to generate a corresponding massage mode according to the fourth waveform signal; the storage module is configured to store the massage mode.
[0131] In an embodiment of the present invention, the first transmission module 140 is specifically configured to: send a waveform acquisition request to a preset terminal, and receive the fourth waveform signal returned by the preset terminal according to the waveform acquisition request.
[0132] In a specific embodiment, the preset terminal refers to a terminal that can communicate with the massager. The preset terminal includes but is not limited to a mobile terminal and a desktop terminal. The mobile terminal includes a tablet computer, a mobile phone, and a wearable intelligent device with a display interface, such as a smart watch, a smart bracelet, etc., which are convenient to use and easy to carry. The mobile terminal may be the mobile terminal described above or other mobile terminals.. The preset terminal is communicatively connected to the massager. The fourth waveform signal is, for example, an audio signal, such as a waveform signal corresponding to music, a song, a sound effect, a sound, etc.
[0133] Specifically, the fourth waveform signal can be a waveform signal customized by the user of the massager. After the user defines the waveform signal, it can be shared with other users. For example, the defined waveform signal can be sent to a sharing platform for other users to download, or it can be directly shared with the corresponding user. The fourth waveform signal can also be a waveform signal shared by other users with the massager user. When sharing, it can be directly shared with the massager user, that is, directly send the fourth waveform signal to the user's massager, or it can be shared to the corresponding sharing platform, and the user can download the fourth waveform signal from the sharing platform. For example, if an audio signal, such as a song, is stored in a preset terminal, a corresponding waveform signal, that is, the fourth waveform signal, is generated according to the song, and the fourth waveform signal is sent to the massager through the preset terminal. The massager receives the fourth waveform signal, converts the fourth waveform signal into a corresponding fourth electrical pulse signal, and takes the massage mode corresponding to the output of the fourth electrical pulse signal as the massage mode corresponding to the fourth waveform signal, and saves the massage mode. Or, the preset terminal receives the waveform signal of the massager. Thus, when performing massage, the corresponding massage mode can be selected from the user-defined massage mode and the factory preset massage mode. When the massage mode selected by the user to run is the massage mode defined according to music, etc., the linkage between music, sound effects, etc. and the massager can be realized to meet the user's massage needs. It can be understood that some music or sound effects are slow-paced and elegant in rhythm, which are very suitable for the human body to relax. Therefore, converting these music or sound effects into corresponding waveform signals and transmitting them to the massager to achieve linkage, enabling the massager to perform massage actions according to the rhythm or pattern corresponding to the music and sound effects, is more easily accepted by the human body, thereby quickly and effectively relieving human fatigue, etc., and thus improving the massage effect.
[0134] In an embodiment of the present invention, the above current massage mode is, for example, the massage mode corresponding to the fourth waveform signal.
[0135] In an embodiment of the present invention, the saved massage mode generated according to the fourth wave signal can be used as the default massage mode, that is, after the massager is started, the massager runs with the massage mode generated according to the fourth wave signal as the current massage mode.
[0136] In a specific embodiment, for example, the user can generate a corresponding massage mode according to their favorite music, songs, etc., and use this massage mode as the current massage mode of the massager. Thus, after the massager is powered on and started, it runs in this massage mode, thereby realizing the linkage between music, songs, etc. and the massager, enabling the massager to perform massage actions according to the rhythm or pattern corresponding to the music and sound effects, which is more easily accepted by the human body, thereby quickly and effectively relieving human fatigue, etc., and thus improving the massage effect; at the same time, it meets the user's massage needs and improves the user experience.
[0137] In an embodiment of the present invention, the wearable massager 100 further includes a pushing module ( Figure 3 not shown in the figure). The pushing module is configured to push the massage modes stored in the storage module to a preset user terminal or a preset massager. Specifically, the massage mode generated according to the fourth waveform signal (the massage mode corresponding to an audio signal, such as music, song, etc.) is pushed to the preset user terminal or the preset massager, that is, the user-specified user terminal or the preset massager, such as the user terminals or massagers held by the user's friends, family members, etc., so as to realize the sharing function. That is, the user can share their favorite massage modes with family members and friends, thereby improving the interaction experience and enhancing the fun.
[0138] In a specific embodiment, when the massager performs a massage action, it is configured to convert the received low-frequency electrical pulse signal through its electrical stimulation device and output a corresponding low-frequency electrical pulse. The low-frequency electrical pulse acts on the human body through the massage head with the electrode assembly 110 to realize the massage action.
[0139] As a specific embodiment, taking the display device as the display screen of the massager and the preset terminal as a mobile phone as an example, an exemplary description of the wearable massager 100 is given.
[0140] In this embodiment, after the massager is started, it operates according to the current massage mode. The acquisition module 120 acquires the first electrical pulse signal generated by the massager, and the conversion module 130 converts the first electrical pulse signal into a first waveform signal that can be displayed, and then transmits it to the display device through the first transmission module 140, and the first waveform corresponding to the first waveform signal is displayed through the display device.
[0141] The user can perform an adjustment operation on the first waveform by touching the display screen on the display screen of the massager to realize independent creation, obtain a third waveform, convert the third waveform signal corresponding to the third waveform into a third low-frequency electrical pulse signal, and transmit the third low-frequency electrical pulse signal to the electrode assembly 110 of the massager, so that the electrode assembly 110 performs a massage action according to the third low-frequency electrical pulse signal.
[0142] The massager receives a fourth waveform signal generated by an audio signal, such as music, song, etc., sent by the mobile phone, converts the fourth waveform signal into a corresponding fourth low-frequency electrical pulse signal, further generates a corresponding massage mode, and saves the massage mode. Further, the user can also push the massage mode to other users to realize sharing.
[0143] Thus, in this embodiment, the low-frequency electric pulse signal and the waveform signal can be converted to each other, and the low-frequency electric pulse signal can be displayed on the display device to realize the visualization of the low-frequency electric pulse signal, and the user can intuitively and conveniently check the running state of the massager, such as whether the massager is working. In addition, after the low-frequency electric pulse signal is visualized, the user can also independently create the visualized waveform, that is, the user can independently define the waveform, output the corresponding low-frequency electric pulse signal to the massager, and customize the user's unique massage mode, thereby enhancing operability, interactivity and fun. Further, the waveform signal corresponding to the audio signal such as music, songs, and sound effects during games can also be converted into a corresponding low-frequency electric pulse signal, and output to the massager for massage, and generate the user's favorite massage mode, and save the massage mode, so as to facilitate direct retrieval and use when needed, so that the music and the massager can be linked, the massager and the music reach the same frequency, and the user can enjoy the feast of touch and hearing, and improve the massage effect. Further, the user can also share the favorite massage mode with other users, such as family and friends, to improve interactivity and user experience.
[0144] According to the wearable massager 100 of the embodiment of the present invention, the first electric pulse signal, i.e., the low-frequency electric pulse signal, output by the massager in the current massage mode is obtained; the first electric pulse signal is converted into a first waveform signal, and the first waveform corresponding to the first waveform signal is displayed using a display device for the user to view. Thus, the low-frequency electric pulse signal during the operation of the massager can be converted into a corresponding waveform signal and displayed, thereby realizing the visualization of the low-frequency electric pulse signal, facilitating the user to directly view it, facilitating the user to learn about the current operating status of the massager, and improving the user's experience.
[0145] A further embodiment of the present invention provides a mobile terminal.
[0146] Figure 4 is a structural block diagram of a mobile terminal according to another embodiment of the present invention.
[0147] like Figure 4 As shown, the mobile terminal 200 includes: a second transmission module 210 and a display module 220 .
[0148] Specifically, the second transmission module 210 is used to receive a first waveform signal sent by the massager, wherein the first waveform signal is a waveform signal converted from a first electric pulse signal output by the massager. The first electric pulse signal is, for example, a low-frequency electric pulse signal.
[0149] The display module 220 is used to display the first waveform corresponding to the first waveform signal.
[0150] Specifically, after the massager is started, it works in the current massage mode and outputs a first electrical pulse signal, that is, a low-frequency electrical pulse signal. The massager can perform corresponding massage actions according to the first electrical pulse signal. The massager obtains the first electrical pulse signal, converts the first electrical pulse signal, and obtains a corresponding first waveform signal, and then sends the first waveform signal. After the second transmission module 210 receives the first waveform signal, it displays the first waveform corresponding to the first waveform signal through the display module 220, so that the low-frequency electrical pulse signal output when the massager works can be converted into a visible first waveform, realizing the visualization of the low-frequency electrical pulse signal, facilitating the user to intuitively understand the operating state of the massager, such as whether the massager is running or shut down, etc., avoiding the complex operation of the user to check the operating state by removing the massager and the resulting bad feeling, thereby improving the user experience.
[0151] Thus, the mobile terminal 200 receives the first waveform signal obtained by the massager converting the first electrical pulse signal output by it, and displays the first waveform corresponding to the first waveform signal for the user to view. Thus, the low-frequency electrical pulse signal during the operation of the massager can be converted into a corresponding waveform signal and displayed, thereby realizing the visualization of the low-frequency electrical pulse signal, facilitating the user to directly view, facilitating the user to learn about the current operating state of the massager, and improving the user experience.
[0152] In an embodiment of the present invention, the display module 220 can be a display device of the mobile terminal, such as a display screen. Thus, it is convenient for the user to intuitively and conveniently view the displayed waveform, and at the same time, it is convenient for the user to perform custom adjustment operations on the waveform.
[0153] The mobile terminal is, for example, a smart mobile terminal such as a mobile phone or a tablet computer. The massager is communicatively connected to the mobile terminal, such as a wired communication connection or a wireless communication connection.
[0154] In a specific embodiment, the process of the display module 220 displaying the first waveform corresponding to the first waveform signal includes: using the display device of the mobile terminal to display the first waveform corresponding to the first waveform signal. Taking the mobile terminal as a mobile phone as an example, that is, sending the first waveform signal to the mobile phone to use the display device of the mobile phone, such as the mobile phone display screen, to display the first waveform corresponding to the first waveform signal, so as to facilitate the user to directly view, facilitate the user to learn about the current operating state of the massager, and improve the user experience.
[0155] In an embodiment of the present invention, after using the display device of the mobile terminal to display the first waveform corresponding to the first waveform signal, the second transmission module 210 is further configured to: send a second waveform signal to the massager so that the massager converts the second waveform signal into a second electrical pulse signal and then outputs the second electrical pulse signal, where the second waveform signal is a signal generated by adjusting the first waveform.
[0156] In a specific embodiment, after the first waveform is displayed by the display device of the mobile terminal, the user can adjust the displayed first waveform through the display device of the mobile terminal. For example, the user can adjust the peaks, valleys, etc. of the first waveform to obtain a second waveform. The mobile terminal sends the second waveform signal corresponding to the second waveform to the massager. After receiving the second waveform signal, the massager converts the second waveform signal into a second electrical pulse signal and outputs the second electrical pulse signal through the electrode assembly, that is, performs massage with the second electrical pulse. Thus, the user can adjust the first waveform through the mobile terminal, send the waveform signal required by the user (i.e., the second waveform signal) to the massager, so that the massager performs massage according to the second electrical pulse signal corresponding to the second waveform signal, thereby meeting the user's massage needs and improving the user experience.
[0157] In a specific embodiment, the display device of the mobile terminal, for example, has an operable display screen, such as a touch display screen. The touch display screen can display the first waveform. The user can perform touch operations through the touch display screen to perform custom adjustment operations on the displayed first waveform, such as stretching the first waveform, shrinking the first waveform, changing the peaks and valleys of the first waveform, etc. Finally, the second waveform desired by the user is obtained, and the second waveform signal corresponding to the second waveform is generated. The second waveform signal is sent to the massager, and the massager converts the second waveform signal into a second electrical pulse signal and outputs different electrical pulse signals to achieve different massage techniques. Thus, the user can independently create a visual waveform and generate a user-defined massage method, meeting the user's own massage needs, while improving the fun of human-computer interaction and the usage experience.
[0158] The mobile terminal according to an embodiment of the present invention receives the first waveform signal obtained by the massager converting the first electrical pulse signal output by it and displays the first waveform corresponding to the first waveform signal for the user to view. Thus, the low-frequency electrical pulse signal during the operation of the massager can be converted into a corresponding waveform signal and displayed, thereby realizing the visualization of the low-frequency electrical pulse signal, facilitating the user to directly view, and facilitating the user to learn about the current operating state of the massager, improving the user's usage experience.
[0159] A further embodiment of the present invention proposes a massager control system.
[0160] Figure 5 is a structural block diagram of a massager control system according to an embodiment of the present invention. As Figure 5As shown in the figure, the massage instrument control system 1000 includes: the wearable massage instrument 100 described in any of the above embodiments of the present invention, and the mobile terminal 200 described in any of the above embodiments of the present invention. Therefore, for the specific implementation manner and detailed description of the massage instrument control system 1000 according to the embodiments of the present invention, please specifically refer to the description parts of the wearable massage instrument 100 and the mobile terminal 200 above. To reduce redundancy, it will not be elaborated here.
[0161] According to the massage instrument control system of the embodiments of the present invention, the massage instrument obtains the first electrical pulse signal output in its current massage mode, that is, the low-frequency electrical pulse signal; converts the first electrical pulse signal into a first waveform signal, and sends the first waveform signal to the mobile terminal; the mobile terminal uses its display device to display the first waveform corresponding to the first waveform signal for the user to view. Thus, the low-frequency electrical pulse signal during the operation of the massage instrument can be converted into a corresponding waveform signal and displayed, so as to realize the visualization of the low-frequency electrical pulse signal, which is convenient for the user to directly view, facilitates learning about the current operation state of the massage instrument, and improves the user experience.
[0162] A further embodiment of the present invention provides a wearable massage instrument, which includes a processor, a memory, and a signal processing program stored on the memory and executable on the processor. When the signal processing program is executed by the processor, it implements the signal processing method applicable to the massage instrument described in any of the above embodiments of the present invention.
[0163] In a specific embodiment, the wearable massage instrument is, for example, a neck massage instrument, etc.
[0164] According to the massage instrument of the embodiments of the present invention, it obtains the first electrical pulse signal output by the massage instrument in the current massage mode, that is, the low-frequency electrical pulse signal; converts the first electrical pulse signal into a first waveform signal, and uses the display device to display the first waveform corresponding to the first waveform signal for the user to view. Thus, the low-frequency electrical pulse signal during the operation of the massage instrument can be converted into a corresponding waveform signal and displayed, so as to realize the visualization of the low-frequency electrical pulse signal, which is convenient for the user to directly view, facilitates learning about the current operation state of the massage instrument, and improves the user experience.
[0165] A further embodiment of the present invention provides a display device, which includes a processor, a memory, and a signal processing program stored on the memory and executable on the processor. When the signal processing program is executed by the processor, it implements the signal processing method applicable to the display device described in any of the above embodiments of the present invention.
[0166] In a specific embodiment, the display device is, for example, the display device of an intelligent mobile terminal such as a mobile phone, or the display screen of a massage instrument.
[0167] The display device according to an embodiment of the present invention receives a first waveform signal obtained by converting a first electrical pulse signal output by a massager, and displays a first waveform corresponding to the first waveform signal for a user to view. Thus, the low-frequency electrical pulse signal during the operation of the massager can be converted into a corresponding waveform signal and displayed, thereby realizing the visualization of the low-frequency electrical pulse signal, facilitating the user to directly view, and being convenient for the user to learn about the current operating state of the massager, improving the user experience.
[0168] A further embodiment of the present invention provides a computer-readable storage medium, on which a signal processing program is stored. When the signal processing program is executed by a processor, it implements the signal processing method applicable to a massager as described in any one of the above embodiments of the present invention.
[0169] For the computer-readable storage medium according to an embodiment of the present invention, when the stored program is executed, it acquires a first electrical pulse signal output by a massager in a current massage mode, that is, a low-frequency electrical pulse signal; converts the first electrical pulse signal into a first waveform signal, and uses a display device to display a first waveform corresponding to the first waveform signal for a user to view. Thus, the low-frequency electrical pulse signal during the operation of the massager can be converted into a corresponding waveform signal and displayed, thereby realizing the visualization of the low-frequency electrical pulse signal, facilitating the user to directly view, and being convenient for the user to learn about the current operating state of the massager, improving the user experience.
[0170] A further embodiment of the present invention provides a computer-readable storage medium, on which a signal processing program is stored. When the signal processing program is executed by a processor, it implements the signal processing method applicable to a display device as described in any one of the above embodiments of the present invention.
[0171] For the computer-readable storage medium according to an embodiment of the present invention, when the stored program is executed, it receives a first waveform signal obtained by converting a first electrical pulse signal output by a massager, and displays a first waveform corresponding to the first waveform signal for a user to view. Thus, the low-frequency electrical pulse signal during the operation of the massager can be converted into a corresponding waveform signal and displayed, thereby realizing the visualization of the low-frequency electrical pulse signal, facilitating the user to directly view, and being convenient for the user to learn about the current operating state of the massager, improving the user experience.
[0172] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc. are based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation on the present invention.
[0173] In the description of the present invention, "a plurality of" means two or more.
[0174] In the description of this specification, the description with reference to the terms "one embodiment", "some embodiments", "schematic embodiments", "examples", "specific examples", or "some examples", etc. means that the specific features, structures, materials, or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example.
[0175] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the claims and their equivalents.
Claims
1. A signal processing method, characterized in that, Applied to a wearable massager, the massager includes an electrode assembly for outputting an electrical pulse signal, and the method includes: Obtain a first electrical pulse signal output by the massager in the current massage mode; Convert the first electrical pulse signal into a first waveform signal; Use a display device to display a first waveform corresponding to the first waveform signal, where the display device is a display device of a mobile terminal or the display device is a display screen of the massager.
2. The method according to claim 1, wherein When the display device is a display device of a mobile terminal, the massager is communicatively connected to the mobile terminal; The using the display device to display the first waveform corresponding to the first waveform signal includes: Send the first waveform signal to the mobile terminal to use the display device of the mobile terminal to display the first waveform corresponding to the first waveform signal.
3. The method according to claim 2, wherein After using the display device of the mobile terminal to display the first waveform corresponding to the first waveform signal, the method further includes: Receive a second waveform signal sent by the mobile terminal, where the second waveform signal is a signal generated by the adjusted waveform of the first waveform; Convert the second waveform signal into a second electrical pulse signal; Output the second electrical pulse signal.
4. The method according to claim 1, wherein When the display device is the display screen of the massager, the method further includes: Receive an adjustment operation of the user on the first waveform to obtain a third waveform; Generate a third waveform signal according to the third waveform; Convert the third waveform signal into a third electrical pulse signal; Output the third electrical pulse signal.
5. The method according to claim 1, wherein Before obtaining the first electrical pulse signal, the method further includes: Receive a start instruction for starting the current massage mode; Execute the start instruction and output the first electrical pulse signal.
6. The method according to any one of claims 1 to 5, characterized in that The method further includes: Receive a fourth waveform signal sent by a preset terminal; Generate a corresponding massage mode according to the fourth waveform signal; Save the massage mode.
7. The method according to claim 6, characterized in that, The current massage mode is the massage mode corresponding to the fourth waveform signal.
8. The method according to claim 6, wherein The method further includes: Send a waveform acquisition request to the preset terminal; The receiving the fourth waveform signal sent by the preset terminal includes: receiving the fourth waveform signal returned by the preset terminal according to the waveform acquisition request.
9. A signal processing method, characterized in that, Applied to a display device, the display device is a display device of a mobile terminal or the display device is a display screen of a massager, and the method includes: Receive a first waveform signal sent by a massager, where the first waveform signal is a waveform signal obtained by converting a first electrical pulse signal output by the massager; Display a first waveform corresponding to the first waveform signal.
10. The method according to claim 9, characterized in that When the display device is a display device of a mobile terminal, the massager is communicatively connected to the mobile terminal; The displaying the first waveform corresponding to the first waveform signal includes: Use the display device of the mobile terminal to display the first waveform corresponding to the first waveform signal.
11. The method according to claim 10, wherein After using the display device of the mobile terminal to display the first waveform corresponding to the first waveform signal, it further includes: Send a second waveform signal to the massager so that the massager converts the second waveform signal into a second electrical pulse signal and then outputs the second electrical pulse signal, where the second waveform signal is a signal generated from the waveform after the first waveform is adjusted.
12. The method according to claim 9, wherein When the display device is the display screen of the massager, the method further includes: Receiving a user's adjustment operation on the first waveform to obtain a third waveform; Generating a third waveform signal according to the third waveform; Sending the third waveform signal to the massager so that the massager converts the third waveform signal into a third electrical pulse signal and then outputs the third electrical pulse signal.
13. A wearable massager, characterized in that, The massager includes: An electrode assembly for outputting an electrical pulse signal; An acquisition module for acquiring a first electrical pulse signal output by the massager in the current massage mode; A conversion module for converting the first electrical pulse signal into a first waveform signal; A first transmission module for sending the first waveform signal to a display device to display the first waveform corresponding to the first waveform signal by using the display device, where the display device is the display device of a mobile terminal or the display device is the display screen of the massager.
14. A mobile terminal, characterized in that, The mobile terminal includes: A second transmission module for receiving the first waveform signal sent by the massager, where the first waveform signal is a waveform signal after conversion of the first electrical pulse signal output by the massager; A display module for displaying the first waveform corresponding to the first waveform signal.
15. A massage device control system, characterized in that, Comprises: The wearable massager according to claim 13; And The mobile terminal according to claim 14.
16. A wearable massager, characterized in that, The massager includes a processor, a memory, and a signal processing program stored on the memory and executable on the processor. When the signal processing program is executed by the processor, it implements the signal processing method according to any one of claims 1-8.
17. A display device, characterized in that, The display device includes a processor, a memory, and a signal processing program stored on the memory and executable on the processor. When the signal processing program is executed by the processor, it implements the signal processing method according to any one of claims 9-12.
18. A computer-readable storage medium, characterized in that, A signal processing program is stored on the computer-readable storage medium. When the signal processing program is executed by a processor, it implements the signal processing method according to any one of claims 1-8.
19. A computer-readable storage medium, characterized in that, A signal processing program is stored on the computer-readable storage medium. When the signal processing program is executed by a processor, it implements the signal processing method according to any one of claims 9-12.
Citation Information
Patent Citations
Reminding apparatus and method for wearable device
CN105242778A
Low-frequency pulse signal line searching system
CN110596511A
High potential therapeutic instrument with four kinds of different distorted waveforms
CN204601384U